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首页> 外文期刊>Nanoscale >Proteinase- sculptured 3D-printed graphene/polylactic acid electrodes as potential biosensing platforms: towards enzymatic modeling of 3D-printed structures dagger
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Proteinase- sculptured 3D-printed graphene/polylactic acid electrodes as potential biosensing platforms: towards enzymatic modeling of 3D-printed structures dagger

机译:蛋白酶-雕刻3 d打印石墨烯/聚乳酸电极的潜力若平台:对酶的建模3 d打印的结构的匕首

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摘要

3D printing technologies are currently appealing for the research community due to their demonstrated versatility for different scientific applications. One of the most commonly used materials for 3D printing is polylactic acid (PLA), a biodegradable polymer that can be fully or partially digested by enzymes such as proteinase K. This work seeks to exploit PLA's biodegradability to selectively and reproducibly sculpt 3D-printed graphene/PLA surfaces to turn them into sensitive electroactive platforms. Proteinase K-catalyzed digestion of 3D-printed graphene/PLA electrodes is proposed as an environmentally friendly, highly controllable, and reproducible activation procedure of 3D-printed electrodes. Proteinase K digests PLA in a controllable fashion, exposing electroactive graphene sheets embedded within the 3D-printed structures to the solution and therefore achieving a tailorable electrode performance. A proof-of-concept biosensing application is proposed, based on the immobilization of enzyme alkaline phosphatase at the sculptured electrodes with the subsequent electrochemical detection of 1-naphthol in aqueous media. This work attempts to continue demonstrating the potential of 3D printing in electroanalytical applications, as well as to explore the exciting possibilities arising from merging biotechnological processes with these manufacturing procedures.
机译:3 d打印技术目前有吸引力由于他们的研究社区演示了不同的科学的多功能性应用程序。材料3 d打印技术是聚乳酸(解放军),一个可以完全可生物降解的聚合物或部分消化的酶等蛋白酶k .这项工作旨在利用解放军生物降解性选择性和重复性良好造型3 d打印的石墨烯/聚乳酸表面他们敏感的电活性的平台。蛋白酶K-catalyzed消化3 d打印石墨烯/人民解放军提出作为电极环保,高度可控,和可再生的激活程序3 d打印的电极。以可控的方式,暴露出电活性石墨烯嵌入到3 d打印因此结构的解决方案实现一个可裁制成衣的电极性能。概念验证若应用程序提出了基于酶的固定化碱性磷酸酶在雕刻电极随后的电化学检测1-naphthol水媒体。继续展示3 d的潜力印刷在electroanalytical应用程序中,以及探索令人兴奋的可能性因合并生物技术过程这些生产过程。

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